Dimeric architecture of the Hendra virus attachment glycoprotein: evidence for a conserved mode of assembly.

Thomas A Bowden1 Max Crispin David J Harvey E Yvonne Jones David I Stuart
Affiliations 1 institutions
  1. Division of Structural Biology, Wellcome Trust Centre for Human Genetics, University of Oxford, Roosevelt Drive, Oxford OX3 7BN, United Kingdom.

Abstract

Hendra virus is a negative-sense single-stranded RNA virus within the Paramyxoviridae family which, together with Nipah virus, forms the Henipavirus genus. Infection with bat-borne Hendra virus leads to a disease with high mortality rates in humans. We determined the crystal structure of the unliganded six-bladed beta-propeller domain and compared it to the previously reported structure of Hendra virus attachment glycoprotein (HeV-G) in complex with its cellular receptor, ephrin-B2. As observed for the related unliganded Nipah virus structure, there is plasticity in the Glu579-Pro590 and Lys236-Ala245 ephrin-binding loops prior to receptor engagement. These data reveal that henipaviral attachment glycoproteins undergo common structural transitions upon receptor binding and further define the structural template for antihenipaviral drug design. Our analysis also provides experimental evidence for a dimeric arrangement of HeV-G that exhibits striking similarity to those observed in crystal structures of related paramyxovirus receptor-binding glycoproteins. The biological relevance of this dimer is further supported by the positional analysis of glycosylation sites from across the paramyxoviruses. In HeV-G, the sites lie away from the putative dimer interface and remain accessible to alpha-mannosidase processing on oligomerization. We therefore propose that the overall mode of dimer assembly is conserved for all paramyxoviruses; however, while the geometry of dimerization is rather closely similar for those viruses that bind flexible glycan receptors, significant (up to 60 degrees ) and different reconfigurations of the subunit packing (associated with a significant decrease in the size of the dimer interface) have accompanied the independent switching to high-affinity protein receptor binding in Hendra and measles viruses.

Supporting text Virus Host Location
Virus Assembly 1 Cell Line 158 Dimerization 1 Hendra Virus 39 Henipavirus Infections 65 Humans 1440 Molecular Conformation 1 Protein Structure, Secondary 11 Viral Envelope Proteins 60 attachment protein G 8

Evidence records

2 total
Functional Mechanism
2 records · 2 evidence types
Evidence type
1 records
OVE793
Key finding

Hendra virus attachment glycoprotein (HeV‑G) binds the cellular receptor ephrin‑B2 as shown by structural complex analysis.

Virus
Host
Not specified
Location
Not specified
Supporting text

We determined the crystal structure of the unliganded six‑bladed beta‑propeller domain and compared it to the previously reported structure of Hendra virus attachment glycoprotein (HeV‑G) in complex with its cellular receptor, ephrin‑B2.

Method
crystal structure determination | structural comparison of HeV‑G–ephrin‑B2 complex
Receptors
ephrin‑B2
Evidence type
1 records
OVE794
Key finding

Hendra virus and Nipah virus attachment glycoproteins undergo structural transitions upon ephrin-B2 receptor binding, indicating adaptive conformational plasticity related to host receptor engagement.

Virus
Host
Not specified
Location
Not specified
Supporting text

We determined the crystal structure of the unliganded six-bladed beta-propeller domain and compared it to the previously reported structure of Hendra virus attachment glycoprotein (HeV-G) in complex with its cellular receptor, ephrin-B2. As observed for the related unliganded Nipah virus structure, there is plasticity in the Glu579-Pro590 and Lys236-Ala245 ephrin-binding loops prior to receptor engagement.

Genes or proteins
attachment glycoprotein | HeV-G
Receptors
ephrin-B2
Mechanism types
receptor binding | host entry